Substrate strain engineering: an efficient strategy to enhance the catalytic activity of SACs on waved graphene for e-NRR
Literature Information
Di Liu, Haoqiang Ai, Wan Tong Lou, Feifei Li, Kin Ho Lo
Ammonia is an important chemical in both industry and agriculture. The production of ammonia in a green way is challenging. The electrochemical nitrogen reduction reaction (e-NRR) has been proposed for this purpose. However, this technology is still far from practical applications due to low production, which is mainly because of inefficient electrocatalysts. In this work, we have designed a series of single-atom catalysts (SACs) anchored on waved graphene (wG) for efficient e-NRR and systematically investigated the effect of curvature on the catalytic performance based on first-principles calculations. Eight SACs (V, Cr, Mn, Fe, Co, Ni, Cu, and Pt) anchored on waved graphene with various curvatures (0–50%) have been studied. We found that the curvature strongly affected the formation, catalytic activity, and selectivity of SACs for e-NRR: (1) the formation possibility of SACs on wG was considerably enhanced on increasing the curvature. (2) The free energies for the rate-determining steps of SAC-V-wG, SAC-Mn-wG, and SAC-Cr-wG were less than 1.0 eV, leading to high catalytic activity for e-NRR. In particular, SAC-Mn-wG exhibited higher activity for e-NRR than SAC-Mn on flat graphene. (3) The three systems had higher selectivity for e-NRR than for HER, which could be further improved by compression. Thus, we conclude that SAC-Mn-wG is the best SAC on wG for e-NRR because of its easy fabrication, good catalytic performance and high selectivity. We believe that our findings can provide new insights in reported experimental results and guidance for the design of novel SACs with high performance for e-NRR.
Related Literature
RAFT polymerisation of trifluoroethylene: the importance of understanding reverse additions
Marc Guerre, Cédric Totée, Gilles Silly, Olinda Gimello, Bruno Améduri, Jean-François Tahon, Rinaldo Poli, Sophie Barrau, Vincent Ladmiral
DOI: 10.1039/D0PY01754J
Nucleobase-monofunctionalized supramolecular poly(l-lactide): controlled synthesis, competitive crystallization, and structural organization
Xing Li, Lingling Ni, Chenxuan Sun, Wenqing Xu
DOI: 10.1039/D1PY00288K
Polyolefin graft copolymers through a ring-opening metathesis grafting through approach
Huiqun Wang, Sebla Onbulak, Steven Weigand, Frank S. Bates, Marc A. Hillmyer
DOI: 10.1039/D0PY01728K
Self-catalyzing photoredox polymerization for recyclable polymer catalysts
Jacob J. Lessard, Georg M. Scheutz, Angie B. Korpusik, Rebecca A. Olson, C. Adrian Figg, Brent S. Sumerlin
DOI: 10.1039/D1PY00208B
Synthesis and properties of helically-folded poly(arylenediethynylene)s
Michihisa Toya
DOI: 10.1039/D1PY00144B
Engineering of pH-triggered nanoplatforms based on novel poly(2-methyl-2-oxazoline)-b-poly[2-(diisopropylamino)ethyl methacrylate] diblock copolymers with tunable morphologies for biomedical applications
Peter Černoch, Alessandro Jager, Zulfiya Černochová, Vladimir Sincari, Lindomar J. C. Albuquerque, Rafal Konefal, Ewa Pavlova, Fernando C. Giacomelli, Eliezer Jager
DOI: 10.1039/D1PY00141H
The effect of alkyl chain lengths on the red-to-near-infrared emission of boron-fused azomethine conjugated polymers and their film-state stimuli-responsivities
Shunsuke Ohtani, Natsumi Yamada, Masayuki Gon, Kazuo Tanaka, Yoshiki Chujo
DOI: 10.1039/D1PY00213A
You might also like
What industries use (1R,3S)-1,3-Cyclopentanediol (CAS: 16326-97-9)?
(1R,3S)-1,3-Cyclopentanediol finds applications in various industries. In the ph...
What precautions should be taken when handling N'-[4-(Dimethylamino)phenyl]-N,N-dimethyl-1,4-benzenediamine (CAS: 637-31-0)?
When handling N'-[4-(Dimethylamino)phenyl]-N,N-dimethyl-1,4-benzenediamine, it i...
Are there alternatives to 5-(2,4-Difluorophenyl)-2-methoxypyrimidine (CAS: 1352318-16-1) in synthesis?
There are several alternatives to 5-(2,4-Difluorophenyl)-2-methoxypyrimidine in ...
What regulatory guidelines apply to 1-(3-Methoxyphenoxy)propan-2-ol (CAS: 382141-68-6)?
1-(3-Methoxyphenoxy)propan-2-ol (CAS: 382141-68-6) must comply with the Globally...
Is Tetrodotoxin Citrate (CAS: 18660-81-6) safe?
Tetrodotoxin Citrate is extremely dangerous and should be handled with extreme c...
What are the main uses of 2-Methyl-2-propanyl [(1R,3S)-3-hydroxycyclopentyl]carbamate (CAS: 225641-84-9)?
2-Methyl-2-propanyl [(1R,3S)-3-hydroxycyclopentyl]carbamate (CAS: 225641-84-9) i...
How should waste containing 4-(2-Hydroxyhexafluoroisopropyl)Benzoic Acid (CAS: 16261-80-6) be handled?
Waste containing 4-(2-Hydroxyhexafluoroisopropyl)Benzoic Acid (CAS: 16261-80-6) ...
How is 2-Methyl-2-proanyl {(2S)-1-[(benzyloxy)amino]-3-hydroxy-3-methyl-1-oxo-2-butanyl}carbamate (CAS: 102507-19-7) typically synthesized?
2-Methyl-2-proanyl {(2S)-1-[(benzyloxy)amino]-3-hydroxy-3-methyl-1-oxo-2-butanyl...
What is Benzeneethanamine, α-ethyl-, hydrochloride (1:1) (CAS: 20735-15-3)?
Benzeneethanamine, α-ethyl-, hydrochloride (1:1) is an organic compound with the...
Are there alternatives to 3-{(E)-[4-(Dimethylamino)phenyl]diazenyl}benzoic acid (CAS: 20691-84-3) in synthesis?
In the synthesis of compounds similar to 3-{(E)-[4-(Dimethylamino)phenyl]diazeny...















